Relativistic Energy Visualisation

The well known formula

${\displaystyle E^2=(pc{)}^2+(m_0{c}^2{)}^2}$^[1][2] reflects that

${\displaystyle pc}$

and

${\displaystyle m_0{c}^2}$

are catheters in a triangle.

By recognizing that

${\displaystyle pc=mcv}$

it is plain to see that as the velocity (v) approaches c, the alpha angle approaches vertical and thus

${\displaystyle pc=m{c}^2}$

which indeed equals E.

Calculating alpha may be done by

${\displaystyle tan(\alpha )=\frac{pc}{m_0{c}^2}=\frac{mcv}{m_0{c}^2}=\frac{\frac{m_0}{\sqrt{1-(\frac{v}{c}{)}^2}}cv}{m_0{c}^2}}$

Now we can do some parameter eliminations like

${\displaystyle \frac{pc}{m_0{c}^2}=\frac{\frac{1}{\sqrt{1-(\frac{v}{c}{)}^2}}v}{c}}$

simplifying this expression we get

${\displaystyle \frac{pc}{m_0{c}^2}=\frac{1}{\sqrt{(\frac{c}{v}{)}^2-1}}}$

and finally we get

${\displaystyle pc=\frac{m_0{c}^2}{\sqrt{(\frac{c}{v}{)}^2-1}}}$

where it is quite easy to calculate pc with regard to number of rest energies, knowing only rest mass and velocity.

Using vectors we may write total energy as

${\displaystyle E=m_0{c}^2{a}_x+pc{a}_y}$

which gives the magnitude of E as

${\displaystyle |E|=\sqrt{(m_0{c}^2{)}^2+(pc{)}^2}}$

and while using

${\displaystyle E_k=E-E_0}$

we may write

${\displaystyle E_0=n{m}_0{c}^2{a}_x+npc{a}_y}$

Ek is then

${\displaystyle E_k=E-E_0=(1-n)m_0{c}^2{a}_x+(1-n)pc{a}_y}$

where n<1 thus

${\displaystyle E_k=m_{k0}{c}^2{a}_x+m_{k}vc{a}_y}$

where m_k0<m_0 and m_k<m

The length of the E_0 vector is

${\displaystyle E_0=\sqrt{(n{m}_0{c}^2{)}^2+(npc{)}^2}=n\sqrt{(m_0{c}^2{)}^2+(pc{)}^2}=m_0{c}^2}$

this means that

${\displaystyle E_0=nE}$

where it is obvious that E_0 has less energy than the total energy, E.

The rather fascinating consequence of this is that Ek seams to have a "rest energy" of less than the actual rest energy, looking at pc the same happens here where it comes to the mass, this must happen because kinetic energy is calculateted by subtracting rest energy from E and the only way this can be done is by keeping the E-vector direction (but reversed) so that the pc-mass has the same proportion as the rest mass, otherwise substraction is impossible.

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